US6251126B1 - Method and apparatus for synchronized treatment of obstructive sleep apnea - Google Patents
Method and apparatus for synchronized treatment of obstructive sleep apnea Download PDFInfo
- Publication number
- US6251126B1 US6251126B1 US09/411,845 US41184599A US6251126B1 US 6251126 B1 US6251126 B1 US 6251126B1 US 41184599 A US41184599 A US 41184599A US 6251126 B1 US6251126 B1 US 6251126B1
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- patient
- respiratory effort
- electrode
- diaphragm
- pulse generator
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/18—Applying electric currents by contact electrodes
- A61N1/32—Applying electric currents by contact electrodes alternating or intermittent currents
- A61N1/36—Applying electric currents by contact electrodes alternating or intermittent currents for stimulation
- A61N1/3601—Applying electric currents by contact electrodes alternating or intermittent currents for stimulation of respiratory organs
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/18—Applying electric currents by contact electrodes
- A61N1/32—Applying electric currents by contact electrodes alternating or intermittent currents
- A61N1/36—Applying electric currents by contact electrodes alternating or intermittent currents for stimulation
- A61N1/36007—Applying electric currents by contact electrodes alternating or intermittent currents for stimulation of urogenital or gastrointestinal organs, e.g. for incontinence control
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/18—Applying electric currents by contact electrodes
- A61N1/32—Applying electric currents by contact electrodes alternating or intermittent currents
- A61N1/36—Applying electric currents by contact electrodes alternating or intermittent currents for stimulation
- A61N1/3605—Implantable neurostimulators for stimulating central or peripheral nerve system
- A61N1/3606—Implantable neurostimulators for stimulating central or peripheral nerve system adapted for a particular treatment
- A61N1/3611—Respiration control
Definitions
- the present invention concerns the field of medical electrical stimulation and, in particular, concerns the method and apparatus for synchronized treatment of obstructive sleep apnea.
- Obstructive Sleep Apnea is a common disorder in western society, affecting between approximately 4 to 9% of the general population over the age of 40. It is a condition where the upper airway may be occasionally obstructed, either partially or completely, during sleep. Such obstructions may result in an interruption of sleep or at the least diminished quality of sleep.
- the primary clinical symptom is daytime hypersomnolence. This condition can significantly interfere with a patient's ability to function normally. Long-term medical consequences of chronic, untreated OSA may include pulmonary and systemic hypertension, cardiac arrhythmias, increased likelihood of myocardial infarction and ultimately, cardiac failure.
- upper airway collapse can be relieved in many ways.
- One approach is to bypass the upper airway so that even if the airway collapses, there is an alternative route for air to flow. Such a bypass is accomplished through a tracheostomy procedure. This of course is highly invasive, costly and not currently favored.
- Another approach is to reverse the upper airway collapse. Many treatments may be used to reverse the upper airway collapse, including weight loss, pharmacological management, upper airway reconstructive surgery, or continuous positive airway pressure (CPAP).
- CPAP continuous positive airway pressure at present is now the most favored method for treating OSA, being used in approximately 80% of all newly diagnosed cases of OSA. In spite of its current widespread use CPAP is still not the ideal treatment.
- Stimulation of the upper airway and in particular of the hypoglossal nerve in synchrony with the inspiratory phase of respiration is a further alternative therapy for patients with OSA.
- Patients treated with such a upper airway stimulation system are provided the opportunity to gain restful, uninterrupted sleep otherwise not possible due to the obstructive apnea episodes.
- the system for stimulation consists of an implanted programmable pulse generator, such as the Medtronic Inspire Model 3024 Implantable pulse generator, a stimulating lead, such as the Medtronic Model 3990 half cuff electrode, and a dP/dt pressure sensing lead to signal respiration, such as the Medtronic model 4322 pressure sensor.
- Preliminary results demonstrate that hypoglossal nerve stimulation for treatment of OSA is successful.
- FIGS. A and B illustrate the problem of cardiac artifacts in the pressure signal.
- FIG. A details the sensed pressure signal due to respiration. As seen in this embodiment, the sensed pressure signal is generally sinusoidal. As further seen in this figure, the bottom tracing shows the stimulus markers, positive spikes indicating stimulation begins while negative spikes indicate the stimulation stops.
- FIG. B shows a pressure signal having an unacceptably large cardiac artifact.
- this type of pressure signal is much less rhythmic or repetitive as that shown above.
- this non-rhythmic signal makes the interpretation of the pressure signal much more difficult, if not impossible.
- a reliable and accurate sensing of pressure is inhibited, leading to a not optimally therapeutic delivery of stimulation, seen here as lower tracing in this figure.
- Thoracic impedance measures is a widely accepted method of detection of respiration, the concept being a change in lung volume during respiration.
- the lung volume hardly changes, making thoracic impedance measures unsuitable for detection of respiratory effort.
- Patients with obstructive sleep apnea still try to breathe and, therefore, lower the diaphragm. Therefore, impedance measures over the diaphragm should result in a signal related to respiratory effort. This signal can be used as an input signal for a hypoglossal nerve stimulator.
- the present invention provides obstructive sleep apnea treatment through stimulation to the hypoglossal nerve synchronized with respiratory effort.
- stimulation is provided by an implantable pulse generator, the implantable pulse generator having a stimulation stage to output stimulation pulses to a body structure, a sensing stage to sense the respiratory effort of a patient, and a controller, to coordinate, and preferably to synchronize, the output stimulation pulses with the sensed respiratory effort.
- the respiratory effort of a patient is sensed through the use of two electrodes disposed such that the diaphragm is positioned between, and the high frequency alternating current is injected from one electrode to the other and the corresponding impedance is measured, the corresponding impedance thus being a function of the diaphragm position, itself indicating the respiratory effort of the patient.
- the present invention permits the delivery of stimulation to be precisely controlled by the actual respiratory effort of the patient.
- FIGS. A and B illustrate the problem of cardiac artifacts in the pressure signal.
- FIG. 1 shows the present invention implanted in a patient.
- FIG. 2A is a sectional view of the patient shown in FIG. 1 detailing the disposition of the electrodes across the diaphragm.
- FIG. 2B is a cross-sectional view of the patient shown in FIG. 1 detailing the disposition of the electrodes across the diaphragm.
- FIG. 3 is a block diagram of the present invention.
- FIG. 4 shows a relationship between respiratory effort airflow and the delivery of stimulation as practiced in the present invention.
- FIG. 5A shows a typical sensed intrathoracic pressure waveform and the corresponding areas during which stimulation is delivered.
- FIG. 5B shows the gradual ramping up in stimulation amplitude delivered to the nerve in the preferred embodiment.
- FIG. 5C depicts the preferred stimulation waveform.
- FIG. 6 is a flowchart detailing the operation of the present invention.
- FIG. 1 shows the present invention implanted in a patient.
- device 1 is implanted in patient 2 , preferably subcutaneously along the upper chest wall.
- the device may further be implanted in other areas and is only limited in its selected position by the desired length of the leads coupling the device to the relative body structures.
- Device has first lead 3 which couples the device to the hypoglossal nerve 4 through cuff portion 5 of lead 3 .
- lead 3 having cuff portion 5 is the Medtronic model 3990 half cuff nerve electrode.
- An additional lead 10 is coupled to device 1 .
- Lead 10 features a first electrode 11 and a second electrode 12 .
- Electrodes are preferably positioned adjacent but not within diaphragm muscle 13 . Electrodes are further preferably positioned such that they will not move during or along with movement of the diaphragm during respiration. In the preferred embodiment, electrodes 11 and 12 are positioned at the level of the lowermost rib in the ribcage by being sutured to the subcutaneous tissue. Of course, the electrodes may be positioned in other acceptable manners, such as even directly to the respective ribs using, e.g., sutures, staples, screws, glue, etc.
- FIG. 2 is a sectional view of the patient shown in FIG. 1 detailing the disposition of the electrodes across the diaphragm.
- electrode 11 is preferably positioned in the front or anterior while electrode 12 is preferably positioned in the back or posterior area of the thoracic cavity near spinal column 14 .
- electrode may be mounted to any acceptable body structure in any manner acceptable, e.g. rib, tendon, etc. by, e.g., sutures, staples, screws, glue, etc.
- any electrode design acceptable may be used.
- FIG. 2B is a cross-sectional view of the patient shown in FIG. 1 detailing the disposition of the electrodes across the diaphragm. This view especially shows the relative change in position of the diaphragm during inspiration and exhalation. As seen, during inspiration the diaphragm moves into a lower position, as designated by the dotted line 13 - 1 . During exhalation the diaphragm moves upwardly into a higher position, as designated by the dotted line 13 - 2 .
- the impedance of the tissue measured between electrodes 11 and 12 changes from low impedance at the end of expiration when mainly muscle, fat, and organ tissue is in between the electrodes 11 and 12 , to high impedance during an attempt to inhale, when mainly lung tissue filled with air comes in between the electrodes.
- FIG. 3 is a block diagram of the present invention.
- device 1 is contained within a hermetic enclosure 20 .
- Device is powered by battery 21 which is coupled to microprocessor 22 which, in turn, is coupled to the sense stage 23 as well as the output stage 24 .
- Telemetry 25 is further provided to permit the device to be remotely accessed and controlled by the physician.
- Output stage outputs through one or more feedthroughs 30 to lead 3 .
- Sense stage likewise, is coupled through one or more feedthroughs 31 to lead 10 having electrodes 11 and 12 .
- sense stage 23 includes a pulse generator and impedance sensing circuit, as is well known in the art. Such a device permits the sense stage to output a high frequency current through electrode 11 to be sensed by electrode 12 .
- the measured impedance between electrodes 11 and 12 is thereafter used to sense the respiratory effort of the diaphragm. This information is thereafter processed by microprocessor and used to control output stage 24 . Any acceptable or high frequency current may be delivered through electrode 11 to electrode 12 for sensing respiratory effort, such as a 1 mA AC current delivered with a frequency between 4 kHz-64 kHz, for example.
- FIG. 4 shows a relationship between respiratory effort, airflow and the delivery of stimulation as practiced in the present invention.
- line 40 shows a typical airflow pattern for a respiratory cycle.
- the airflow essentially occurs in a sinusoidal wave pattern oscillating between the inhalation of air and the exhalation of air.
- the maximum of air in occurs when the airflow signal crosses zero in a downwards direction
- minimum airflow in is when the airflow signal crosses zero in an upwards direction.
- the oscillation is between maximum flow and minimum flow. Therefore, airflow starts (at zero) at inspiration shortly after a negative pressure occurs because of the fact that the diaphragm lowers: thus shortly after an increase of the impedance.
- Line 41 depicts the change in impedance as a result of alternating diaphragmatic muscle contraction/relaxation.
- the impedance is proportional to respiratory effort. When the impedance is minimal (diaphragm completely up) inspiration starts. When impedance crosses zero, the airflow reaches its maximum (or minimum during expiration). Thus the phase shift “L” is at least 90°.
- respiratory effort is basically synchronized to the airflow, although slightly leading or ahead of phase to the airflow, as seen by “L”. This is not surprising as it is the respiratory effort which gives rise to the airflow.
- Line 42 shows the stimulation marker channel of the present device.
- the stimulation is triggered by the impedance crossing a predetermined stimulation threshold, here shown as corresponding to the lowest sensed impedance.
- the predetermined stimulation threshold may be set to any acceptable manner and in the preferred embodiment would be completely programmable.
- stimulation is triggered as represented at 42 - 1 on the stimulation marker channel line.
- Stimulation is thereafter provided to the hypoglossal nerve through lead 3 and cuff 5 as already discussed above. Stimulation may be provided for any amount of time, and in the preferred embodiment is turned off once a desired change in impedance is sensed.
- stimulation is turned off once the slope of the sensed impedance is negative and crosses a predetermined threshold.
- the maximum negative slope shown here is occurring at 41 - 2 and causing the corresponding cessation of stimulation at 42 - 2 .
- any desired parameters may be used or sensed to control the cessation of stimulation.
- FIG. 5A shows a typical sensed intrathoracic pressure waveform and the corresponding areas during which stimulation is delivered. Stimulation, for example could be turned off only as a function of time or as only a function of sensed impedance.
- FIG. 5B shows the gradual ramping up in stimulation amplitude delivered to the nerve in the preferred embodiment. The amplitude of each pulse train delivered is ramped up so as to have a gradual effect on the patient.
- FIG. 5C depicts the preferred stimulation waveform.
- the stimulation parameters may be as follows: Voltage between approximately 0-10.5V; Rate between approximately 20-40 pps; and Pulse width between approximately 65-208 ⁇ -sec. These pulses are monophasic, but net charge is zero.
- a cuff electrode such as the Medtronic model 3990 A or B may be used. Preferably the cuff electrode features 3 electrodes, the outer 2 are positive (anode) and the middle is always negative (cathode).
- FIG. 6 is a flow chart detailing the operation of the present invention.
- operation of the device begins when apnea treatment function is turned on in block 50 .
- Device may be turned on by the patient himself, such as using a programmer. Other methods may also be used, such as EEG sensing.
- the device proceeds to block 51 and waits for a predetermined period of time. This permits the device to operate only once it is believed the patient is already asleep.
- the device's stimulation to the hypoglossal nerve causes the tongue to move forward and thus away from the air passage.
- the device waits for a predetermined period (programmable) of time before beginning the treatment of apnea through the sensing of respiratory effort.
- a predetermined period programmable
- the device may have other methods of ensuring that stimulation is only provided when the patient is asleep, such methods include an activity sensor, posture sensor, EEG sensor, temperature sensor, ECG sensor or any combinations thereof. What is important is that the stimulation is only provided when the patient is asleep and not in the period of time when the patient is trying to go to sleep.
- the device begins to sense respiratory effort.
- the device may be turned off in any number of acceptable manners, including 1) by the patient himself, using a patient programmer (not a magnet); 2) by a time-out option (therapy stops automatically when the device is on for a programmable number of hours—typically between 1 and 15 hours); and 3) there are programmable delay times—just like before falling asleep, when the patient wakes up in the night, he can restart the device: a new delay (programmable) will start.
- hypoglossal nerve stimulation is disclosed it should be understood other nerves and structures may either or also be stimulated, including muscles, etc.
- electrodes implanted adjacent the diaphragm they may also be implanted in other areas, such as abdominal, pectoral, etc.
Abstract
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Claims (16)
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US09/411,845 US6251126B1 (en) | 1998-04-23 | 1999-10-04 | Method and apparatus for synchronized treatment of obstructive sleep apnea |
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US6472998A | 1998-04-23 | 1998-04-23 | |
US09/411,845 US6251126B1 (en) | 1998-04-23 | 1999-10-04 | Method and apparatus for synchronized treatment of obstructive sleep apnea |
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Cited By (131)
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